Arctic sea ice motion change and response to atmospheric forcing between 1979 and 2019

被引:26
|
作者
Zhang, Fanyi [1 ,2 ]
Pang, Xiaoping [1 ,3 ]
Lei, Ruibo [2 ,3 ]
Zhai, Mengxi [2 ]
Zhao, Xi [3 ]
Cai, Qiongqiong [4 ]
机构
[1] Wuhan Univ, Sch Resource & Environm Sci, Wuhan, Peoples R China
[2] Polar Res Inst China, Key Lab Polar Sci, MNR, Shanghai, Peoples R China
[3] Wuhan Univ, Chinese Antarctic Ctr Surveying & Mapping, Wuhan, Peoples R China
[4] MNR, Natl Marine Environm Forecasting Ctr, Beijing, Peoples R China
基金
中国国家自然科学基金;
关键词
Arctic; atmospheric circulation pattern; sea ice motion; spatiotemporal change; wind forcing; DECADAL TRENDS; PACIFIC SECTOR; CLIMATE-CHANGE; CANADA BASIN; DRIFT; OCEAN; VARIABILITY; WIND; CIRCULATION; DEFORMATION;
D O I
10.1002/joc.7340
中图分类号
P4 [大气科学(气象学)];
学科分类号
0706 ; 070601 ;
摘要
Quantification of the spatial variability and long-term changes of Arctic sea ice motion is important for understanding the mechanisms of rapid Arctic sea ice decline because sea ice motion determines ice mass advection, outflow, thickness redistribution, as well as the formation of leads and ridges associated with ice deformation. The spatiotemporal changes in Arctic sea ice motion between 1979 and 2019 and their responses to atmospheric forcing were analysed using satellite-derived sea ice motion products and atmospheric reanalysis data. The pan-Arctic average sea ice drift speed increased significantly for all seasons between 1979 and 2019 (p < .001). Rates of increase were higher in autumn and winter than in spring and summer. Spatially, rates of increase in the peripheral seas in the Pacific sector-the Beaufort, Chukchi and East Siberian Seas-were higher than in the central Arctic Ocean and the peripheral seas in the Atlantic sector-the Kara and Laptev Seas. On the contrary, Arctic wind speed increased significantly only in autumn (p < .01). However, the correlation between wind speed and ice speed was the lowest in this season, suggesting that wind forcing is unable to completely account for drift speed increase. In general, the trends in above-average drift speeds-retrieved from grid cells with the relatively high drift speeds-were statistically significant and were larger than that in average drift speeds probably because of enhanced response of ice motion to extreme wind forcing. The influence of the Arctic Oscillation, Beaufort High, and North Atlantic Oscillation on the zonal ice speed was symmetrical between the Pacific and Atlantic sectors of the Arctic Ocean, while the influence of the Dipole Anomaly and the east-west surface air pressure gradient in central Arctic on the meridional ice speed was distributed in an annular pattern and was the strongest along the Transpolar Drift Stream.
引用
收藏
页码:1854 / 1876
页数:23
相关论文
共 50 条
  • [41] Atmospheric response in summer linked to recent Arctic sea ice loss
    Petrie, R. E.
    Shaffrey, L. C.
    Sutton, R. T.
    [J]. QUARTERLY JOURNAL OF THE ROYAL METEOROLOGICAL SOCIETY, 2015, 141 (691) : 2070 - 2076
  • [42] Response of Meridional Wind to Greenhouse Gas Forcing, Arctic Sea-Ice Loss, and Arctic Amplification
    Chen, Xiaodan
    Dai, Aiguo
    [J]. JOURNAL OF CLIMATE, 2022, 35 (22) : 3675 - 3697
  • [43] Response of Baltic Sea ice to seasonal, interannual forcing and climate change
    Omstedt, A
    Nyberg, L
    [J]. TELLUS SERIES A-DYNAMIC METEOROLOGY AND OCEANOGRAPHY, 1996, 48 (05): : 644 - 662
  • [44] Variability of Arctic Sea Ice (1979-2016)
    Wu, Zhankai
    Wang, Xingdong
    [J]. WATER, 2019, 11 (01)
  • [45] Role of atmospheric heat fluxes and ocean advection on decadal (2000-2019) change of sea-ice in the Arctic
    Mukherjee, A.
    Ravichandran, M.
    [J]. CLIMATE DYNAMICS, 2023, 60 (11-12) : 3503 - 3522
  • [46] The Roles of Sea Ice Export, Atmospheric and Oceanic Factors in the Seasonal and Regional Variability of Arctic Sea Ice during 1979-2020
    Li, Mengmeng
    Ke, Changqing
    Cheng, Bin
    Shen, Xiaoyi
    He, Yue
    Sha, Dexuan
    [J]. REMOTE SENSING, 2022, 14 (04)
  • [47] Remarkable separability of circulation response to Arctic sea ice loss and greenhouse gas forcing
    McCusker, K. E.
    Kushner, P. J.
    Fyfe, J. C.
    Sigmond, M.
    Kharin, V. V.
    Bitz, C. M.
    [J]. GEOPHYSICAL RESEARCH LETTERS, 2017, 44 (15) : 7955 - 7964
  • [48] Role of sea surface temperature, Arctic sea ice and Siberian snow in forcing the atmospheric circulation in winter of 2012–2013
    Yannick Peings
    Gudrun Magnusdottir
    [J]. Climate Dynamics, 2015, 45 : 1181 - 1206
  • [49] Atmospheric forcing on the Barents Sea winter ice extent
    Sorteberg, Asgeir
    Kvingedal, Borge
    [J]. JOURNAL OF CLIMATE, 2006, 19 (19) : 4772 - 4784
  • [50] The atmospheric response to realistic Arctic sea ice anomalies in an AGCM during winter
    Alexander, MA
    Bhatt, US
    Walsh, JE
    Timlin, MS
    Miller, JS
    Scott, JD
    [J]. JOURNAL OF CLIMATE, 2004, 17 (05) : 890 - 905